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Paper · arXiv 2508.19188

FastMesh:Efficient Artistic Mesh Generation via Component Decoupling

Jeonghwan Kim, Yushi Lan, Armando Fortes, Yongwei Chen, Xingang Pan

17 upvotesAugust 26, 2025arXiv 预印本
AI 摘要

A framework for efficient artistic mesh generation reduces redundancy by separating vertex and face generation, using an autoregressive model for vertices and a bidirectional transformer for faces, and includes a fidelity enhancer and post-processing to improve quality and speed.

autoregressive modelsbidirectional transformervertex generationface generationfidelity enhancerpost-processingmesh generationadjacency matrixmesh quality

Abstract

Recent mesh generation approaches typically tokenize triangle meshes into sequences of tokens and train autoregressive models to generate these tokens sequentially. Despite substantial progress, such token sequences inevitably reuse vertices multiple times to fully represent manifold meshes, as each vertex is shared by multiple faces. This redundancy leads to excessively long token sequences and inefficient generation processes. In this paper, we propose an efficient framework that generates artistic meshes by treating vertices and faces separately, significantly reducing redundancy. We employ an autoregressive model solely for vertex generation, decreasing the token count to approximately 23\% of that required by the most compact existing tokenizer. Next, we leverage a bidirectional transformer to complete the mesh in a single step by capturing inter-vertex relationships and constructing the adjacency matrix that defines the mesh faces. To further improve the generation quality, we introduce a fidelity enhancer to refine vertex positioning into more natural arrangements and propose a post-processing framework to remove undesirable edge connections. Experimental results show that our method achieves more than 8times faster speed on mesh generation compared to state-of-the-art approaches, while producing higher mesh quality.

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FastMesh:Efficient Artistic Mesh Generation via Component Decoupling | TensorX